Molecular Density Functional Theory of Water
Abstract
Three dimensional implementations of liquid state theories offer an efficient alternative to computer simulations for the atomic-level description of aqueous solutions in complex environments. In this context, we present a (classical) molecular density functional theory (MDFT) of water that is derived from first principles and is based on two classical density fields, a scalar one, the particle density, and a vectorial one, the multipolar polarization density. Its implementation requires as input the partial charge distribution of a water molecule and three measurable bulk properties, namely the structure factor and the k-dependent longitudinal and transverse dielectric constants. It has to be complemented by a solute-solvent three-body term that reinforces tetrahedral order at short range. The approach is shown to provide the correct three-dimensional microscopic solvation profile around various molecular solutes, possibly possessing H-bonding sites, at a computer cost two-three orders of magnitude lower than with explicit simulations.
Cite
@article{arxiv.1302.2848,
title = {Molecular Density Functional Theory of Water},
author = {Guillaume Jeanmairet and Maximilien Levesque and Rodolphe Vuilleumier and Daniel Borgis},
journal= {arXiv preprint arXiv:1302.2848},
year = {2013}
}
Comments
19 pages, 4 figures